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To investigate the effects of Dittrichia viscosa L. Greuter 1973 extract as a biopesticide on beneficial entomofauna in a greenhouse setting in the Biskra region, our study was conducted at the experimental site (CRSTRA). The aerial parts of D. viscosa were collected, dried, and analyzed in laboratory. The antioxidant potential of the plant extract was assessed by 2, 2-diphenyl-1-picrylhydrazyl (DPPH), alkaline DMSO superoxide, O-phenanthroline chelating (Phen) and iron reducing power (RP) methods. Enzyme inhibitory was studied using the iodine/potassium iodide method. A 200 m2 greenhouse was established in November 2021 and planted with to-mato (Cecilia), divided into four blocks, each equipped with sticky traps for monitoring ento-mofauna from May 1st to June 1st. The pulverized D. viscosa extract was applied at different concentrations (D1=5 ml/l; D2=10 ml/l; D3=15 ml/l) every 10 days. Analysis of the hydro-methanolic extract of D. viscosa revealed significant antioxidant activities and effective α-amylase inhibition, indicating its potential as a free radical scavenger and a useful therapeutic agent for addressing radical-related pathological damage. Additionally, the extract's biopesticide effects on beneficial insects were evaluated. Results showed a total richness of 75 species across 7 orders and 44 families, with the most abundant species belonging to Hymenoptera (37 species), Coleoptera (14 species), and Diptera (11 species). The predominant categories included parasitoids (29%), predators (24%), pests (15%), and pollinators (11%). As a biopesticide, the extract proved effective in reducing pest populations by 50% at the highest concentration (15 ml/L). The Pielou evenness index values (H5 ml/L = 0.8787, H10 ml/L= 0.8506, H= 0.836, compared to the control = 0.4179) indicated a nearly homogeneous distribution of individuals among species. The Shannon diversity index suggested that increasing concentrations of D. vis-cosa extract (E5 ml/L = 0, E10 ml/L= 1.33, and E15 ml/L= 0.5623) did not significantly impact the presence of pollinator species in the tomato greenhouse in the Biskra region.
Czasopismo
Rocznik
Tom
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14--29
Opis fizyczny
Bibliogr. 54 poz., rys., tab.
Twórcy
autor
- Plant Production Biotechnology Laboratory, Department of Biotechnology and Agro-Ecology, Faculty of Natural and Life Sciences, Blida 1 University, Po. Box. 270, Soumaa Road, Blida, Algeria
autor
- Scientific and Technical Research Center on Arid Regions, Po. Box 1682, Biskra, Algeria
autor
- Scientific and Technical Research Center on Arid Regions, Po. Box 1682, Biskra, Algeria
- Scientific and Technical Research Center on Arid Regions, Po. Box 1682, Biskra, Algeria
autor
- Scientific and Technical Research Center on Arid Regions, Po. Box 1682, Biskra, Algeria
autor
- Scientific and Technical Research Center on Arid Regions, Po. Box 1682, Biskra, Algeria
- Scientific and Technical Research Center on Arid Regions, Po. Box 1682, Biskra, Algeria
autor
- Plant Production Biotechnology Laboratory, Department of Biotechnology and Agro-Ecology, Faculty of Natural and Life Sciences, Blida 1 University, Po. Box. 270, Soumaa Road, Blida, Algeria
Bibliografia
- 1. Bambara D. and Tiemtoré J. (2008). Efficacité biopesticide de Hyptis spicigera Lam., Azadirachta indica A. Juss. et Euphorbia balsamifera Ait. sur le niébé Vigna unguiculata L. Walp. Tropicultura, 26, 53–55.
- 2. Belien T., Raymaekers S., Eeraerts M., Mommaerts V., Claus G., Bogen C., Piot N., Smagghe G., Spanoghe P., Bylemans D. (2021). Towards Integrated Pest and Pollinator Management in Intensive Pear Cultivation: A Case Study from Belgium. Insects, 12, 901. https://doi.org/10.3390/ insects12100901
- 3. Bouchoukh I., Hazmoune T., Boudelaa M., Bensouici C., Zellagui A. (2019). Anticholinesterase and antioxidant activities of foliar extract from a tropical species: Psidium guajava L. (Myrtaceae) grown in Algeria. Current Issues in Pharmacy and Medical Sciences 32(3), 160–167. https://doi.org/10.2478/cipms-2019-0029
- 4. Borges S., Alkassab A.T., Collison E., Hinarejos S., Jones B., McVey E., Roessink I., Steeger T., Sultan M., Wassenberg J. (2021). Overview of the testing and assessment of effects of microbial pesticides on bees: strengths, challenges and perspectives. Apidologie 52, 1256–1277. https://doi:10.1007/s13592-021-00900-7
- 5. Brullo S. and De Marco G. (2000). Taxonomical revision of the genus Dittrichia (Asteraceae). Port Acta Biol; 19(1), 341–354.
- 6. Cappa F., Baracchi D., Cervo R. (2022). Biopesticides and insect pollinators: Detrimental effects, outdated guidelines, and future directions, Science of The Total Environment. 837, 155714, https://doi.org/10.1016/j.scitotenv.2022.155714
- 7. Challa K., Firake D.M., Behere G.T. (2019). Bio-pesticide applications may impair the pollination services and survival of foragers of honey bee, Apis cerana Fabricius in oilseed brassica, Environmental Pollution, 249, 598–609, https://doi.org/10.1016/j.envpol.2019.03.048
- 8. Chavana J., Joshi N.K. (2024). Toxicity and risk of biopesticides to insect pollinators in urban and agricultural landscapes. Agrochemicals, 3, 70–93. https://doi.org/10.3390/agrochemicals3010007
- 9. Chahmi N., Anissi J., Jennan S., Farah A., Sendide K., El Hassouni M. (2015). Antioxidant activities and total phenol content of Inula viscosa extracts selected from three regions of Morocco. Asian Pacific Journal of Tropical Biomedicine. 5(3), 228–233.
- 10. Deghiche-Diab, N., Deghiche, L. (2016). Ziban oases Spontaneous flora. Biskra, Algeria. (Eds) Éditions universitaires européennes. (in French).
- 11. Deghiche-Diab, N., Deghiche, L. (2019). Ziban oasis Weeds flora. Biskra, Algeria. (Eds) INRAA. (in French).
- 12. Deghiche-Diab, N., Deghiche, T. (2022). New records and check list of arthropods from two oasis ecosystems in Algeria. Studia Universitatis Babeș-Bolyai Biologia, 67(1), 896105. https://doi.org/10.24193/subbbiol.2022.1.05
- 13. Dieumegard P. (2010). PAST, logiciel statistique naturaliste. professeur de SVT Lycée Pothier 45044 Orléans. http://sciencexp.free.fr/livrets_pdf/ modemploi_past.pdf
- 14. Diouf J., Diouf A., Tine A.M., Abdou Salam M.S., Mbaye K., Nob K. (2022). Effets des pratiques biopesticides sur l’entomofaune et la production de tomate (Solanum lycopersicum) dans la station expérimentale de l’ISAE (Dakar-Sénégal). (Frensh) Rev. Mar. Sci. Agron. Vét. 10(2), 253–259.
- 15. Frank A. (2013). Capture, packaging, shipping, and collection of insects and mites for identification purposes. (Ed) Cirad, Montpellier. (in French).
- 16. Jerada R., Er-Rakibi A., Cherkani Hassani A., Hanane Benzeid A. El Ouardi, Harhar H., Hing Goh B., Yow Y., Leng Ser H., Bouyahya A., Mojemmi B., Doukkali A. (2024). A comprehensive review on ethnomedicinal uses, phytochemistry, toxicology, and pharmacological activities of Dittrichia viscosa (L.) Greuter. Journal of Traditional and Complementary Medicine. 14(4), 355–380.
- 17. Hammer Ø., Harper D., Ryan P. (2001). PAST: Paleontological Statistics Software Package for Education and Data Analysis. Palaeontologia Electronica, 4(1), 1–9.
- 18. Idris H., Suryani E., Gustia H., Ramadhan A. I. (2022). The effect of various essential oil and solvent additives on the botanical pesticide of Piper aduncum essential oil on formulation antifungal activity. Results in Engineering. 16, 100644. https://doi:10.1016/j.rineng.2022.10064
- 19. Gasic S. and Tanovic B. (2013). Biopesticide formulations, possibility of application and future trends. Journal Pesticides and Phytomedicine, 2, 97–102.
- 20. Khater H.F. (2012). Prospects of botanical biopesticides in insect pest management. Pharmacologia; 12, 641–656.
- 21. Konda L.N., Czinkota I., Füleky G., Morovján G. (2002). Modeling of single-step and multistep adsorption isotherms of organic pesticides on soil. J. Agric. Food Chem. 50, 7326–7331.
- 22. Kumar S. (2012). Biopesticides: a need for food and environmental safety. J. Biofertil. Biopestic. 3, 1–3. https://doi:10.4172/2155-6202.1000e107
- 23. Kumar J., Ramlal A., Mallick D., and Mishra V. (2021). An overview of some biopesticides and their importance in plant protection for commercial acceptance. Plan. Theory 10, 1185. https://doi:10.3390/plants10061185
- 24. Kunchandy E. and Rao M.N.A. 1990. Oxygen radical scavenging activity of curcumin, Int. J. Pharm 58, 237–240.
- 25. Lampiri E., Agrafioti P., Levizou E., Athanassiou C.G. (2020). Insecticidal effect of Dittrichia viscosa lyophilized epicuticular material against four major stored-product beetle species on wheat. Crop Protection, 132, 105095, https://doi.org/10.1016/j.cropro.2020.105095
- 26. Lahmadi S., Belhamra M., Karoune S., Imad k., Bensouici C., Kechebar M.S.A., Halis Y., Ksouri R. (2020). Phenolic constituents and antioxidant activity of Euphorbia retusa Forssk. Natural Product Research, 24, 3545–3547. https://doi.org/10.1080/14786419.2019.158204 0
- 27. Lengai G. and Muthomi J. (2018). Biopesticides and their role in sustainable agricultural production. Journal of Biosciences and Medicines, 6, 7–41. https://doi:10.4236/jbm.2018.66002
- 28. Lokbani C. (2018). Formulation of a plant-based pesticide from the Tlemcen region. Master’s Thesis, University of Tlemcen. (in French).
- 29. Malahlela M., Thibane V.S., Mudau F.N. (2021). Nematocidal activity of fermented extracts from Lantana camara plant parts against Meloidogyne javanica on tomato. Int. J. Veg. Sci. 27, 20–28. https://doi: 10.1080/19315260.2019.1697981
- 30. Memmott J., Craze P.G., Waser N.M., Price M.V. (2007). Global warming and the disruption of plant-pollinator interactions. Ecol. Lett., 10, 710–717.
- 31. Monteiro dos Santos T., Pereira Costa N., Leite Torres A., Leal Boiça Júnior A. (2004). Effect of neem extract on the cotton aphid. Pesq. agropec. bras., Brasília, 39(11), 1071–1076.
- 32. Muddanuru T, Polumetla AK, Maddukuri L, Mulpuri S. (2019). Development and evaluation of transgenic castor (Ricinus communis L.) expressing the insecticidal protein Cry1Aa of Bacillus thuringiensis against lepidopteran insect pests. Crop Protection. 119, 113–25. https://doi.org/10.1016/j.cropro.2019.01.016
- 33. Mssillou A., Agour M., Slighoua M., Tourabi G., Nouioura B., Lyoussi E., Derwich. (2022). Phytochemical characterization, antioxidant activity, and in vitro investigation of antimicrobial potential of Dittrichia viscosa L. leaf extracts against nosocomial infections, Acta Ecologica Sinica, 42(6), 661– 669. https://doi.org/10.1016/j.chnaes.2021.09.021
- 34. Müller L., Gnoyke S., Popken A.M., V. Böhm V. (2010). Antioxidant capacity and related parameters of different fruit formulations. LWT - Food Science and Technology, 43, 992–999.
- 35. Muzemu S., Mvumi B.M., Nyirenda S.P.M., Sileshi G.W., Sola P., Kamanula J.F., Belmain S.R., Stevenson P.C. (2011). Pesticidal effects of indigenous plants extracts against rape aphids and tomato red spider mites. In: African Crop Science Society (eds). African Crop Science Conference Proceedings, 10, 169–171.
- 36. Oudjiane A., Razi S., Bounaceur F., Boussad F., Benrima A. (2018). Fluctuations saisonnières et Dégats de Frankliniella occidentalis (Pergande, 1895) (Thysanoptera: Thripidae) sur cultures maraichères sous serre dans la région de Bejaia. Agrobiologia, 8(1), 948–957.
- 37. Oyaizu, M. (1986). Studies on products of browning reaction: Antioxidative activities of browning reaction prepared from glucosamine. Japanese Journal of Nutrition 44, 307–315. https://doi.org/10.5264/eiyogakuzashi.44.307
- 38. Parolin P., Ion Scotta M., Bresch C. (2014). Biology of Dittrichia viscosa, a mediterranean ruderal plant: a review. Phyton, International Journal of Experimental Botany, 83, 251–262. PAST program (V. 2.17)
- 39. Peng S., Trinh C.Y., Lopez S., Mussen J.E., Hung E.C., Chuang A.R. (2015). The effects of azadirachtin on the parasitic mite, Varroa jacobsoni and its host honey bee (Apis mellifera). J. Apic. Res, 39, 159–168. https://doi.org/10.1080/00218839.2000.1 1101037 R version 4.0.0, 2020-04-24
- 40. Randhir R. and Shetty K. (2007). Improved α-amylase and Helicobacter pylori inhibition by fenugreek extracts derived via solid-state bioconversion using Rhizopus oligosporus. Asia Pac J Clin Nutr, 16(3), 382–392.
- 41. Reddy D.S., Chowdary N.M. 2021. Botanical biopesticide combination concept-a viable option for pest management in organic farming. Egypt. J. Biol. Pest. Control. 31, 1–10. https://doi: 10.1186/ s41938-021-00366-w
- 42. Rhimi W., Hlel R., Ben Salem I., Boulila A., Rejeb A., Saidi M. (2019). Dittrichia viscosa L. ethanolic extract based ointment with antiradical, antioxidant, and healing wound activities, BioMed Research International Volume, https://doi.org/10.1155/2019/4081253
- 43. Rotundo G., Paventi G., Barberio A., De Cristofaro A., Notardonato I., Russo M.V., Germinara G.S. (2019). Biological activity of Dittrichia viscosa (L.) Greuter extracts against adult Sitophilus granarius (L.) (Coleoptera, Curculionidae) and identification of active compounds Scientific Reports. 9, 6429. https://doi.org/10.1038/ s41598-019-42886-4
- 44. Roy D.C., Pakhira M.C., and Bera S. (2016). A review on biology cultivation and fertilization of Azolla. Adv. Life Sci., 5(1), 11–15.
- 45. Saberi F., Marzban R., Ardjmand M., Shariati F.P., Tavakoli O. (2020). Optimization of culture media to enhance the ability of local bacillus thuringiensis var. tenebrionis. Journal of the Saudi society of. Agric. Sci. 19, 468–475. https://doi:10.1016/j.jssas.2020.08.004
- 46. Salima B., Hachemi B., Zineb B. (2016). Insecticidal activity of inula Viscosa L. (Asteraceae) essential oils on adults of Bactrocera oleae Gmel (Diptera Tephritidae). Journal of Global Agriculture and Ecology, 5(4), 225–230. Retrieved from https://ikprress.org/index.php/JOGAE/article/view/2031
- 47. Santos A.O.R., Bartelli B.F, Nogueira-Ferreira F.H. (2014). Potential pollinators of tomato, Lycopersicon esculentum (Solanaceae), in open crops and the effect of a solitary bee in fruit set and quality. J Econ Entomol. 107, 3, 987–994, https://doi.org/10.1603/ EC13378 Statistica software (version 6.0, 2001).
- 48. Szydlowska-Czerniaka A., Dianoczki C., Recseg K., Karlovits G., Szlyk E. (2008). Determination of antioxidant capacities of vegetable oils by ferric-ion spectrophotometric methods. Talanta; 76, 899–905.
- 49. Tchaker F.Z. and Merah O., Djazouli Z. (2016). Toxicity evaluation of Dittrichia viscosa L’s aqueous extracts in combination with bio-adjuvant silene fuscata on Chaitophorus leucomelas Koch. (Hom., Aphididae) and on biocenotic resumption of functional groups. Jordan Journal of Agricultural Sciences, 12(3), 797–814.
- 50. Topçu G., Ay M., Bilici A., Sarıkürkcü C., Öztürk M., Ulubelen A.A. (2007). New flavone from antioxidant extracts of Pistacia terebinthus. Food Chem., 103, 816–822. https://doi.org/10.1016/j.foodchem.2006.09.028
- 51. Vernner R. and Bauer, P. 2007. Q-TEO, a formulation concept that overcomes the incompatibility between water and oil. Pfalz. Nachrichten Bayer, 60, 7–26.
- 52. Weiss, S., Xu, Z.Z., Peddada, S., Amir, A., Bittinger, K., Gonzalez, A., Lozupone C., Zaneveld J.R., Vázquez-Baeza Y., Birmingham A., Embriette R., Knight H.R. (2017). Normalization and microbial differential abundance strategies depend upon data characteristics. Microbiome 5, 27. https://doi:10.1186/s40168-017-0237-y
- 53. Xing Y., Qin Z., Feng M., Li A., Zhang L., Wang Y., Dong X., Zhang Y., Tan S., Shi W. 2019. The impact of Bt maize expressing the Cry1Ac protein on non-target arthropods. Environmental Science and Pollution Research. 26, 5814–9. https://doi.org/10.1007/s11356-018-4025-4
- 54. Zengin G., Cengiz S., Abdurrahman A., Ramazan C., Olcay C. (2014). A comprehensive study on phytochemical characterization of Haplophyllum myrtifolium Boiss. endemic to Turkey and its inhibitory potential against key enzymes involved in Alzheimer, skin diseases and type II diabetes. Industrial Crops and Products 53, 244–251. https://doi.org/10.1016/j.indcrop.2013.12.043
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-75906d48-6ae2-4332-955b-f7cb55de9d92
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